Issue 28, 2023

(Controlled) Free radical (co)polymerization of multivinyl monomers: strategies, topological structures and biomedical applications

Abstract

Free radical (co)polymerization (FRP/FRcP) of multivinyl monomers (MVMs) has emerged as a powerful strategy for the synthesis of chemically and topologically complex polymers due to its unique reaction kinetics, which enables the preparation of polymers with multiple functional groups and novel macromolecular structures. However, conventional FRP/FRcP of MVMs inevitably leads to insoluble crosslinked materials. Therefore, the development of advanced strategies for the controlled polymerization of MVMs is essential for the preparation of chemically and topologically complex polymers. In this review, we introduce the gelation mechanism of conventional FRP of MVMs and present the strategies of controlled polymerization of MVMs for the preparation of chemically and topologically complex polymers. We also discuss polymers with unique topologies synthesized by controlled polymerization of MVMs, such as crosslinked networks, (hyper)branched, star, cyclic, and single-chain cyclized/knotted structures. Finally, biomedical applications of various advanced polymeric materials prepared by controlled polymerization of MVMs are highlighted and the challenges is this field are discussed.

Graphical abstract: (Controlled) Free radical (co)polymerization of multivinyl monomers: strategies, topological structures and biomedical applications

Article information

Article type
Feature Article
Submitted
17 Jan 2023
Accepted
03 Mar 2023
First published
09 Mar 2023

Chem. Commun., 2023,59, 4142-4157

(Controlled) Free radical (co)polymerization of multivinyl monomers: strategies, topological structures and biomedical applications

Z. Li, H. Yong, K. Wang, Y. Zhou, J. Lyu, L. Liang and D. Zhou, Chem. Commun., 2023, 59, 4142 DOI: 10.1039/D3CC00250K

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